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Refering to the C++11 specification (

A lambda-expression appearing in a default argument shall not implicitly or explicitly capture any entity.
[ Example:

void f2() {
    int i = 1;
    void g1(int = ([i]{ return i; })()); // ill-formed
    void g2(int = ([i]{ return 0; })()); // ill-formed
    void g3(int = ([=]{ return i; })()); // ill-formed
    void g4(int = ([=]{ return 0; })()); // OK
    void g5(int = ([]{ return sizeof i; })()); // OK

—end example ]

However, can we also use a lambda-expression itself as the default value for a function argument?


template<typename functor>
void foo(functor const& f = [](int x){ return x; })
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1 Answer 1

Yes. In this respect lambda expressions are no different from other expressions (like, say, 0). But note that deduction is not used with defaulted parameters. In other words, if you declare

template<typename T>
void foo(T = 0);

then foo(0); will call foo<int> but foo() is ill-formed. You'd need to call foo<int>() explicitly. Since in your case you're using a lambda expression nobody can call foo since the type of the expression (at the site of the default parameter) is unique. However you can do:

// perhaps hide in a detail namespace or some such
auto default_parameter = [](int x) { return x; };

    typename Functor = decltype(default_parameter)
void foo(Functor f = default_parameter);
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Hi, +1, thanks for that answer, helped me a lot. I have a few questions though: is it because the template argument deduction is not used for default parameters that the default_parameter needs to be explicitly defined? If yes, why isn't the template argument deduced from the default argument, because of (possible) implicit type conversion in the general case? Is there any good link that covers this (that's not the standard)? – tmaric Mar 3 at 15:07
@tmaric That’s right, default arguments are part of a so-called non-deduced context. I don’t know of any rationale as to why the Standard defines it that way. – Luc Danton Mar 3 at 17:34
Thanks for the reply. Well, I'll just then remember that I have to use it in this way. :) – tmaric Mar 5 at 15:36
@LucDanton: Please, can you demonstrate the same without using templates? – sergiol Aug 19 at 14:39
@sergiol You can write void foo(decltype(default_parameter) f = default_parameter); but then you can’t call foo with anything else than default_parameter (or a copy of it), which seems to make the whole thing pointless. You can use an std::function<Sig> of the appropriate Sig (e.g. int(int) in our example), but you’d need a good reason to do it as it’s a very roundabout way of doing the same thing as writing a function template to begin with. (A function pointer parameter may also be an option but I also suggest against it, it’s less flexible.) – Luc Danton Aug 19 at 15:41

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